An arrayed CRISPR screen reveals Myc depletion to increase productivity of difficult-to-express complex antibodies in CHO cells

Author:

Bauer Niels12,Oswald Benedikt1,Eiche Maximilian1,Schiller Lisa1,Langguth Emma1,Schantz Christian1,Osterlehner Andrea1,Shen Amy3,Misaghi Shahram3,Stingele Julian2ORCID,Ausländer Simon1ORCID

Affiliation:

1. Large Molecule Research, Roche Pharma Research and Early Development (pRED), Roche Innovation Center Munich , Penzberg, Germany

2. Gene Center and Department of Biochemistry, Ludwig-Maximilians-University Munich , Munich 81377, Germany

3. Cell Culture and Bioprocess Operations Department, Genentech Inc. , South San Francisco, CA, USA

Abstract

Abstract Complex therapeutic antibody formats, such as bispecifics (bsAbs) or cytokine fusions, may provide new treatment options in diverse disease areas. However, the manufacturing yield of these complex antibody formats in Chinese Hamster Ovary (CHO) cells is lower than monoclonal antibodies due to challenges in expression levels and potential formation of side products. To overcome these limitations, we performed a clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR associated protein 9 (Cas9)-based knockout (KO) arrayed screening of 187 target genes in two CHO clones expressing two different complex antibody formats in a production-mimicking set-up. Our findings revealed that Myc depletion drastically increased product expression (>40%) by enhancing cell-specific productivity. The Myc-depleted cells displayed decreased cell densities together with substantially higher product titers in industrially-relevant bioprocesses using ambr15 and ambr250 bioreactors. Similar effects were observed across multiple different clones, each expressing a distinct complex antibody format. Our findings reinforce the mutually exclusive relationship between growth and production phenotypes and provide a targeted cell engineering approach to impact productivity without impairing product quality. We anticipate that CRISPR/Cas9-based CHO host cell engineering will transform our ability to increase manufacturing yield of high-value complex biotherapeutics.

Funder

European Research Council under the Europea

Alfried-Krupp von Bohlen und Halbach-Stiftung

European Molecular Biology Organization

Vallee Foundation

Deutsche Forschungsgemeinschaft

German Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Agricultural and Biological Sciences (miscellaneous),Biomedical Engineering,Biomaterials,Bioengineering,Biotechnology

Reference44 articles.

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